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Suppressive Effect of Water Extract from Spent Mushroom Substrate of Pleurotus eryngii against Tomato Bacterial Wilt Disease

큰느타리 수확 후 배지 물 추출물의 토마토 풋마름병 억제

  • Kwak, A-Min (Graduate School of Future Convergence Technology, Hankyong National University) ;
  • Lee, Sang-Yeop (Agricultural Microbiology Division, National Institute of Agricultural Sciences) ;
  • Kang, Hee-Wan (Graduate School of Future Convergence Technology, Hankyong National University)
  • 곽아민 (한경대학교미래융합기술대학원) ;
  • 이상엽 (국립농업과학원 농업미생물과) ;
  • 강희완 (한경대학교미래융합기술대학원)
  • Received : 2016.11.14
  • Accepted : 2016.12.20
  • Published : 2016.12.30

Abstract

Water extract from spent mushroom substrate (WESMS) of Pleurotus eryngii suppressed bacterial wilt disease of tomato caused by Ralstonia solanacearum by 70% without any direct antibacterial activity against the pathogen. WESMS-treated tomato had increased contents of free phenolic compounds (increased by 3%) and total salicylic acid (increased by 75%), and significantly enhanced plant height, leaf number, and fresh weight compared to those of a water-treated tomato sample. These results suggest that the treatment of tomato with WESMS can suppress bacterial wilt disease by enhancing plant defense factors and overall plant health.

큰느타리버섯(Pleurotus eryngii) 수확 후 배지(spent mushroom substrate, SMS)의 물 추출액(WESMS)을 처리한 토마토 식물체는 토마토 풋마름병을 70% 이상 억제하였으며 페놀 성분(3%)과 salicylic acid 함량이 증가되었다. 또한 큰느타리 WESMS 처리 토마토는, 초장, 엽폭, 입장, 입수, 줄기와 뿌리 생체량 등에서 물 처리 및 큰느타리버섯 배지만을 사용한 대조군에 비하여 높은 생육 촉진 효과를 보였다. 이는 큰느타리 WESMS가 병 저항성유도와 생육촉진의 토마토 복합기능성으로 환경친화적 풋마름병 방제에 유용하게 활용될 수 있음을 나타낸다.

Keywords

References

  1. Ministry of Agriculture, Food and Rural Affairs. Agriculture, forestry and livestock food statistics. Sejong: Ministry of Agriculture, Food and Rural Affairs; 2013.
  2. Finimundy TC, Dillon AJ, Henriques JA, Ely MR. Review on general nutritional compounds and pharmacological properties of the Lentinula edodes mushroom. Food Nutr Sci 2014;5:1095-105. https://doi.org/10.4236/fns.2014.512119
  3. Alves MJ, Ferreira IC, Dias J, Teixeira V, Martins A, Pintado M. A review on antimicrobial activity of mushroom (Basidiomycetes) extracts and isolated compounds. Planta Med 2012;78:1707-18. https://doi.org/10.1055/s-0032-1315370
  4. Subramaniyam R, Vimala R. Solid state and submerged fermentation for the production of bioactive substances: a comparative study. Int J Sci Nat 2012;3:480-6.
  5. Vikineswary S, Sanar Kumaran S, Ling SK, Dinesh N, Shim YL. Solid substrate fermentation of agroresidues for value added products: the Malaysian experience. In: Wise DL, editor. Global environmental biotechnology. New York: Elsevier;1997. p. 301-5.
  6. Chen JT, Huang JW. Antimicrobial activity of edible mushroom culture filtrates on plant pathogens. Plant Pathol Bull 2010;19:261-70.
  7. Suess A, Curtis J. Report: Value-added strategies for spent mushroom substrate in BC. Victoria: British Columbia Ministry of Agriculture; 2006.
  8. Kwak AM, Kang DS, Lee SY, Kang HW. Effect of spent mushroom substrates on Phythopthora blight disease and growth promotion of pepper. J Mushrooms 2015;13:16-20. https://doi.org/10.14480/JM.2015.13.1.16
  9. Kwak AM, Min KJ, Lee SY, Kang HW. Water extract from spent mushroom substrate of Hericium erinaceus suppresses bacterial wilt disease of tomato. Mycobiology 2015;43:311-8. https://doi.org/10.5941/MYCO.2015.43.3.311
  10. Hayward AC. Biology and epidemiology of bacterial wilt caused by Pseudomonas solanacearum. Ann Rev Phytopathol 1991;29:65-87. https://doi.org/10.1146/annurev.py.29.090191.000433
  11. Denny TP. 2000. Ralstonia solanacearum: a plant pathogen in touch with its host. Trends Microbiol 2000;8:486-9. https://doi.org/10.1016/S0966-842X(00)01860-6
  12. Sunwoo JY, Lee YK, Hwang BK. Induced resistance against Phytophthora capsici in pepper plants in response to DL-${\beta}$-amino-n-butyric acid. Eur J Plant Pathol 1996;102:663-70. https://doi.org/10.1007/BF01877247
  13. Hassan MA, Abo-Elyouser KA. Activation of tomato plant defence responses against bacterial wilt caused by Ralstonia solanacearum using DL-3-aminobutylic acid (BABA). Eur J Plant Pathol 2013;136:145-57. https://doi.org/10.1007/s10658-012-0149-4
  14. Hatvani N. Antibacterial effect of the culture fluid of Lentinus edodes mycelium grown in submerged liquid culture. Int J Antimicrob Agents 2001;17:71-4. https://doi.org/10.1016/S0924-8579(00)00311-3
  15. Pacumbaba RP, Beyl CA, Pacumbaba RO. Shiitake mycelial leachate suppresses growth of some bacterial species and symptoms of bacterial wilt of tomato and limabean in vitro. Plant Dis 1999;83:20-23. https://doi.org/10.1094/PDIS.1999.83.1.20
  16. Parada RY, Murakami S, Shimomura N, Otani H. Suppression of fungal and bacterial diseases of cucumber plants by using the spent mushroom substrate of Lyophyllum decastes and Pleurotus eryngii. J Phytopathol 2012;160:390-6. https://doi.org/10.1111/j.1439-0434.2012.01916.x
  17. Kim JH, Lee YH, Chi JH, Jang MJ. Comparison of the saccharide content of spent mushroom (Pleurotus ostreatus, Pleurotus eryngii, and Flammulina velutipes) substrates under various pretreatment conditions. J Mushrooms 2016;14:70-4. https://doi.org/10.14480/JM.2016.14.2.70
  18. Mikulic-Petkovsek M, Schmitzer V, Jakopic J, Cunja V, Veberic R, Munda A, Stampar F. Phenolic compounds as defence response of pepper fruits to Colletotrichum coccodes. Physiol Mol Plant Pathol 2013;84:138-45. https://doi.org/10.1016/j.pmpp.2013.09.003
  19. Shibuya N, Minami E. Oligosaccharide signaling for defense responses in plant. Physiol Mol Plant Pathol 2001;59:223-33. https://doi.org/10.1006/pmpp.2001.0364
  20. Minami T, Tanaka T, Takasaki S, Kawamura K. In vivo bioluminescence monitoring of defense gene expression in response to treatment with yeast cell wall extract. Plant Biotechnol 2011;28:481-4. https://doi.org/10.5511/plantbiotechnology.11.1020a
  21. Di Piero RM, Wulff NA, Pascholati SF. Partial purification of elicitor from Lentinual edodes basidiocarps protecting cucumber deedlings against Collectotrichum lagenarium. Braz J Microbiol 2006;37:175-80.
  22. Parada RY, Murakami S, Shimomura N, Egusa M, Otani H. Autoclaved spent substrate of hatakeshimeji mushroom (Lyophyllum decastes Sing.) and its water extract protect cucumber from anthracnose. Crop Prot 2011;30:443-50. https://doi.org/10.1016/j.cropro.2010.11.021
  23. Jonathan SG, Lawal MM, Oyetunji OJ. Effect of spent mushroom compost of Pleurotus pulmonarius on growth performance of four Nigerian vegetables. Mycobiology 2011;39:164-69. https://doi.org/10.5941/MYCO.2011.39.3.164